García de la Torre J, Pérez Sánchez H E, Ortega A, Hernández J G, Fernandes M X, Díaz F G, López Martínez M C
Departamento de Química Física, Facultad de Química, Universidad de Murcia, 30071 Murcia, Spain.
Eur Biophys J. 2003 Aug;32(5):477-86. doi: 10.1007/s00249-003-0292-0. Epub 2003 Apr 16.
While the prediction of hydrodynamic properties of rigid particles is nowadays feasible using simple and efficient computer programs, the calculation of such properties and, in general, the dynamic behavior of flexible macromolecules has not reached a similar situation. Although the theories are available, usually the computational work is done using solutions specific for each problem. We intend to develop computer programs that would greatly facilitate the task of predicting solution behavior of flexible macromolecules. In this paper, we first present an overview of the two approaches that are most practical: the Monte Carlo rigid-body treatment, and the Brownian dynamics simulation technique. The Monte Carlo procedure is based on the calculation of properties for instantaneous conformations of the macromolecule that are regarded as if they were instantaneously rigid. We describe how a Monte Carlo program can be interfaced to the programs in the HYDRO suite for rigid particles, and provide an example of such calculation, for a hypothetical particle: a protein with two domains connected by a flexible linker. We also describe briefly the essentials of Brownian dynamics, and propose a general mechanical model that includes several kinds of intramolecular interactions, such as bending, internal rotation, excluded volume effects, etc. We provide an example of the application of this methodology to the dynamics of a semiflexible, wormlike DNA.
虽然如今使用简单高效的计算机程序来预测刚性颗粒的流体动力学性质是可行的,但此类性质的计算,以及一般而言柔性大分子的动态行为,尚未达到类似的水平。尽管有相关理论,但通常计算工作是针对每个具体问题使用特定的解决方案来完成的。我们打算开发能够极大地便利预测柔性大分子溶液行为任务的计算机程序。在本文中,我们首先概述两种最实用的方法:蒙特卡罗刚体处理方法和布朗动力学模拟技术。蒙特卡罗程序基于对大分子瞬时构象性质的计算,这些构象被视为瞬间刚性的。我们描述了如何将蒙特卡罗程序与用于刚性颗粒的HYDRO套件中的程序相连接,并针对一个假设的颗粒:一个由柔性接头连接的具有两个结构域的蛋白质,给出了此类计算的示例。我们还简要描述了布朗动力学的要点,并提出了一个包含多种分子内相互作用(如弯曲、内旋转、排除体积效应等)的通用力学模型。我们给出了将此方法应用于半柔性、蠕虫状DNA动力学的示例。